[1]Zhang X, Awad HA, O’Keefe RJ, et al. A perspective: engineering periosteum for structural bone graft healing[J]. Clin Orthop Relat Res, 2008, 466(8):1777-1787.
[2]Cuthbert RJ, Churchman SM, Tan HB, et al. Induced periosteum a complex cellular scaffold for the treatment of large bone defects[J]. Bone, 2013, 57(2):484-492.
[3]Zhang ZhX, Liu LX. Therapeutic effect of the self-periosteum transplantation in healing of fracture[J]. China Journal of Orthopaedics and Traumatology, 2005, 18(2):117. (in Chinese)
张忠信, 刘兰秀. 自体骨膜移植促进骨折愈合的疗效观察[J]. 中国骨伤, 2005, 18(2):117.
[4]Ryu YM, Hah YS, Park BW, et al. Osteogenic differentiation of human periosteal-derived cells in a three-dimensional collagen scaffold[J]. Mol Biol Rep, 2011, 38(5):2887-2894.
[5]Zhao L, Zhao J, Wang S, et al. Evaluation of immunocompatibility of tissue-engineered periosteum[J]. Biomed Mater, 2011, 6(1):015005.
[6]Gilbert TW, Sellaro TL, Badylak SF. Decellularization of tissues and organs[J]. Biomaterials, 2006, 27(19):3675-3683.
[7]Gilbert TW. Strategies for tissue and organ decellularization[J]. J Cell Biochem, 2012, 113(7):2217-2222.
[8]Benders KE, van Weeren PR, Badylak SF, et al. Extracellular matrix scaffolds for cartilage and bone regeneration[J]. Trends Biotechnol, 2013, 31(3):169-176.
[9]Wainwright DJ. Use of an acellular allograft dermal matrix (AlloDerm) in the management of full-thickness burns[J]. Burns, 1995, 21(4):243-248.
[10]Lin XF, Shao YK, Wang H, et al. Preparation and identification of the pancreatic decellularized bio-derived scaffold in isolated rats[J]. Acta Anatomica Sinica, 2012, 43(5):717-722. (in Chinese)
林贤丰, 邵营宽, 王辉,等. 离体大鼠胰腺去细胞生物支架的制备与鉴定[J]. 解剖学报, 2012, 43(5):717-722.
[11]Zhang JS, Wang H, Shao PG, et al. Preparation and identification of a whole kidney decellularized bio-derived scaffold[J]. Acta Anatomica Sinica, 2012, 43(2):253-257. (in Chinese)
张建色, 王辉, 邵培刚, 等. 去细胞全肾生物支架的制备与鉴定[J]. 解剖学报, 2012, 43(2):253-257.
[12]Bilkay U, Tokat C, Helvaci E, et al. Osteogenic capacities of tibial and cranial periosteum: a biochemical and histologic study[J]. J Craniofac Surg, 2008, 19(2):453-458.
[13]Lin Z, Fateh A, Salem DM, et al. Periosteum: biology and applications in craniofacial bone regeneration[J]. J Dent Res, 2014, 93(2):109-116.
[14]Colnot C, Zhang X, Knothe Tate ML. Current insights on the regenerative potential of the periosteum: molecular, cellular, and endogenous engineering approaches[J]. J Orthop Res, 2012, 30(12):1869-1878.
[15]Keating JF, Simpson AH, Robinson CM. The management of fractures with bone loss[J]. J Bone Joint Surg Br, 2005, 87(2):142-150.
[16]Allen MR, Hock JM, Burr DB. Periosteum: biology, regulation, and response to osteoporosis therapies[J]. Bone, 2004, 35(5):1003-1012.
[17]Squier CA, Ghoneim S, Kremenak CR. Ultrastructure of the periosteum from membrane bone[J]. J Anat, 1990, 171:233-239.
[18]Kanou M, Ueno T, Kagawa T, et al. Osteogenic potential of primed periosteum graft in the rat calvarial model[J]. Ann Plast Surg, 2005, 54(1):71-78.
[19]Chen AC, Lin SS, Chan YS, et al. Osteogenesis of prefabricated vascularized periosteal graft in rabbits[J]. J Trauma, 2009, 67(1):165-167.
[20]Langer R, Vacanti JP. Tissue engineering[J]. Science, 1993, 260(5110):920-926.
[21]Dawson E, Mapili G, Erickson K, et al. Biomaterials for stem cell differentiation[J]. Adv Drug Deliv Rev, 2008, 60(2):215-228.
[22]Zhang J, Li L. Stem cell niche: microenvironment and beyond[J]. J Biol Chem, 2008, 283(15):9499-9503.
[23]Crapo PM, Gilbert TW, Badylak SF. An overview of tissue and whole organ decellularization processes[J]. Biomaterials, 2011, 32(12):3233-3243.
[24]Song JJ, Ott HC. Organ engineering based on decellularized matrix scaffolds[J]. Trends Mol Med, 2011, 17(8):424-432.
[25]Shi S, Kirk M, Kahn AJ. The role of type I collagen in the regulation of the osteoblast phenotype[J]. J Bone Miner Res, 1996, 11(8):1139-1145. |